BACKGROUND OF THE INVENTION
1. FIELD OF THE INVENTION
[0001] The invention relates to a high-frequency circuit for a radio apparatus.
2. RELATED ART OF THE INVENTION
[0002] A frequency synthesizer in which loop filters are switched in accordance with the
oscillation frequency of a VCO (Voltage Controlled Oscillator) has been proposed in
U.S. PATENT APPLICATION SERIAL NO. 682,255. In the synthesizer, a signal obtained
by dividing the oscillation frequency of the VCO by a frequency divider, and an output
signal of a reference oscillator are input to a phase comparator, and an error signal
corresponding to the phase difference between the two signals is input to the VCO
through the loop filter as a control signal. In this way, a feedback loop is formed
so that an output signal is obtained at the same accuracy as that of the reference
signal. The oscillation frequency is changed by changing the division ratio of the
frequency divider. According to the invention of the above-mentioned patent application,
when the oscillation frequency is changed, loop filters can be switched in accordance
with the changed oscillation frequency, thereby enabling the synthesizer to always
output a signal of a high accuracy.
[0003] However, the proposed synthesizer has several points which remain to be improved.
First, a case will be considered where a VCO in which output oscillation frequency
bands can be switched by an external control signal is used. In this case, loop filters
must be switched so as to conform not only to the frequency obtained as a result of
the switching operation and also to the sensitivity of the VCO attained after the
switching operation. Next, a case will be considered where the synthesizer is provided
with a frequency modulation function using a digital modulation signal. In this case,
particularly when a modulation signal of a high bit rate is used, modulation cannot
be performed while the feedback loop of the synthesizer is closed. Also in this case,
modulation must be performed by using the open-loop modulation system in which the
feedback loop is opened only during the modulation process. In the case of using the
open-loop modulation system, however, the open-loop modulation cannot satisfactorily
be performed by a filter which conforms only to a mere frequency change. In order
to satisfactorily perform the open-loop modulation, the VCO must be designed so as
to exhibit a small frequency change even in an open loop state.
SUMMARY OF THE INVENTION
[0004] It is an object of the invention to provide a synthesizer in which loop filters respectively
corresponding to sensitivities are used so that, even when a VCO attaining plural
output frequency ranges is used, an output can accurately be obtained, and which,
even when a modulation signal of a high bit rate is used, can perform digital frequency
modulation.
[0005] The frequency synthesizer of the invention comprises a VCO in which transmission
oscillation frequency ranges can be switched by an external control signal, and a
loop filter which, even in the case where the output oscillation frequency ranges
of the VCO are switched and the sensitivity of the VCO is changed, conforms to the
change of the sensitivity. Also in this case, therefore, the synthesizer can obtain
an output signal of a high accuracy.
[0006] A synthesizer having a preferred configuration comprises:
a VCO in which output oscillation frequency ranges can be switched by an external
control signal;
a branch circuit which takes out a part of an output signal of the VCO, as a branch
signal;
a frequency divider which divides the frequency of a branch output into a frequency
of a reference signal;
a phase comparator which compares the phase of a frequency-division output with the
phase of the reference signal;
a loop filter which limits the band of an output signal of the phase comparator and
supplies the band-limited output signal to the VCO as a VCO control signal; and
a loop switch which is disposed between the phase comparator and the loop filter,
and which can open a feedback loop.
[0007] More preferably, a capacitor constituting a portion between an analog switch which
closes and opens the feedback loop and the voltage controlled oscillator is a laminated
film capacitor which shows properties of a small change of the capacitance in response
to an applied voltage and a small hysteresis. Even when the feedback loop is opened
immediately after the output oscillation frequency ranges of the VCO are switched,
therefore, the change of the oscillation frequency is small.
[0008] More preferably, a first diode switch which switches the output oscillation frequency
ranges of the VCO, and a second diode one terminal of which is grounded are connected
in reverse. Even when the feedback loop is opened immediately after the output oscillation
frequency ranges of the VCO are switched, therefore, the change of the oscillation
frequency is small.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
Fig. 1 is a block diagram of a frequency synthesizer of a first embodiment of the
invention;
Fig. 2 is a graph showing input-output characteristics of a voltage controlled oscillator
used in the first embodiment of the invention;
Fig. 3 is a block diagram of a loop filter used in the frequency synthesizer of the
first embodiment of the invention;
Fig. 4 is a block diagram of a loop filter used in a frequency synthesizer of a second
embodiment of the invention;
Fig. 5 is a block diagram of a loop filter used in a frequency synthesizer of a third
embodiment of the invention;
Fig. 6 is a block diagram of a loop filter used in a frequency synthesizer of a fourth
embodiment of the invention;
Fig. 7 is a block diagram of a frequency synthesizer of a fifth embodiment of the
invention;
Fig. 8 is a block diagram showing the configuration of a loop filter and analog switch
used in a frequency synthesizer of a sixth embodiment of the invention;
Fig. 9 is a block diagram showing the configuration of a loop filter and an analog
switch used in a frequency synthesizer of a seventh embodiment of the invention;
Fig. 10 is a block diagram of a frequency synthesizer of an eighth embodiment of the
invention;
Fig. 11 is a block diagram of a frequency synthesizer of a ninth embodiment of the
invention;
Fig. 12 is a block diagram showing a circuit which converts the loop open/close control
signal into the switch control signal in a frequency synthesizer of a tenth embodiment
of the invention;
Fig. 13 is a timing chart of the tenth embodiment of the invention;
Fig. 14 is a block diagram showing a circuit which converts the loop open/close control
signal into the switch control signal in a frequency synthesizer of an eleventh embodiment
of the invention;
Fig. 15 is a timing chart of the eleventh embodiment of the invention;
Fig. 16 is a block diagram of a frequency synthesizer of a twelfth embodiment of the
invention;
Fig. 17 is a diagram showing the configuration of a voltage controlled oscillator
used in the twelfth embodiment of the invention; and
Fig. 18 is a diagram showing the configuration of a voltage controlled oscillator
used in a thirteenth embodiment of the invention.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] Fig. 1 is a block diagram of a frequency synthesizer of a first embodiment of the
invention. In Fig. 1, 1 designates a voltage controlled oscillator in which oscillation
frequency ranges are switched in accordance with a switch control signal input through
a second control terminal 12, 11 designates a first control terminal through which
a control signal for changing the oscillation frequency of the voltage controlled
oscillator 1 in the oscillation frequency range is input, 2 designates a variable
frequency divider which variably divides the frequency of an output signal of the
voltage controlled oscillator 1, 3 designates a phase comparator which compares an
output signal from the variable frequency divider 2 with a reference frequency signal
input through a reference frequency input terminal 5 and functioning as the reference
of the frequency, 4 designates a loop filter in which the filter response characteristics
can be changed in accordance a control signal input through a loop filter control
terminal 41, and 6 designates an output terminal of the voltage controlled oscillator
1. The frequency ranges of the voltage controlled oscillator 1 are switched by, for
example, a method in which resonance circuits each consisting of a coil, a capacitor,
and the like in an oscillation circuit are switched by a switch operated in accordance
with a switch control signal.
[0011] Hereinafter, the operation of the frequency synthesizer shown in Fig. 1 will be described.
Fig. 2 shows the characteristics of the voltage controlled oscillator 1. In Fig. 2,
the abscissa indicates the control voltage input through the first control terminal
11 of the voltage controlled oscillator 1, and the ordinate indicates the output frequency
of the voltage controlled oscillator 1. In the embodiment, oscillation frequencies
in two oscillation frequency regions are switched in accordance with the switch control
signal input through the second control terminal 12. Specifically, when an input-output
characteristic 71 is selected by the switch control signal input through the second
control terminal 12, the output frequency of the voltage controlled oscillator is
changed from f1 to f2 by changing the voltage of the first control signal from V1
to V2. When an input-output characteristic 72 is selected by the switch control signal,
the output frequency of the voltage controlled oscillator is changed from f3 to f4
by changing the voltage of the first control signal from V1 to V2. The output of the
voltage controlled oscillator 1 which is obtained as a result of the above-mentioned
control is branched. One of the branches output through the output terminal 6, and
the other branch is input to the variable frequency divider 2. The frequency of the
signal input to the variable frequency divider 2 is divided, and the resulting signal
is input to the phase comparator 3 together with the reference frequency signal input
to the reference frequency input terminal 5. Thereafter, a signal corresponding to
the phase difference between the two frequency signals is input to the loop filter
4. In accordance with the control signal input to the loop filter control terminal
41, The response characteristics of the loop filter 4 are controlled so as to correspond
to the sensitivity which is the slope of the characteristic (71 or 72) of the voltage
controlled oscillator 1 shown in Fig. 2. Then the output signal of the loop filter
4 is input as the first control signal of the voltage controlled oscillator 1, thereby
constituting a feedback loop.
[0012] Fig. 3 is a block diagram showing the configuration of the loop filter used in the
frequency synthesizer of the embodiment. In Fig. 3, 31 designates a loop filter input
terminal, 32 designates a loop filter output terminal, 34 designates an analog switch,
39 and 40 designate capacitors, 37 and 38 designate resistors, and 41 designates the
loop filter control terminal.
[0013] In accordance with the control signal input to the loop filter control terminal 41,
the operation state of the switch 34 is selectively changed over so that a loop filter
band corresponding to the sensitivity of the voltage controlled oscillator 1 is realized.
When a terminal a is selected by the switch 34, the signal input to the loop filter
input terminal 31 is limited by the loop band according to the capacitor 39 and the
resistor 37, and then output through the loop filter output terminal 32. In contrast,
when a terminal b is selected by the switch 34, the signal input to the loop filter
input terminal 31 is limited by the loop band according to the capacitor 40 and the
resistor 38, and then output through the loop filter output terminal 32.
[0014] As seen from the above description, according to the first embodiment, even when
the input-output sensitivity of the voltage controlled oscillator 1 in which the oscillation
frequency ranges can be switched is changed, it is possible to realize a loop filter
corresponding to the change of the input-output sensitivity of the voltage controlled
oscillator 1. Consequently, the time required for changing the channel can be optimized.
[0015] Next, a second embodiment of the invention will be described with reference to the
drawings.
[0016] Fig. 4 is a block diagram of a loop filter used in the frequency synthesizer of the
second embodiment of the invention. The embodiment is basically configured in the
same manner as the first embodiment of Fig. 1. The devices, circuit elements, and
the like identical or equivalent to those shown in Fig. 1 are designated by the same
reference numerals, and duplicated description is omitted. In Fig. 4, analog switches
42 and 43 are disposed in the input and output sides of the loop filter 4, respectively.
The analog switches 42 and 43 switch over series circuits of a capacitor 50 and a
resistor 48, and a capacitor 51 and a resistor 49.
[0017] The operation of the frequency synthesizer of the second embodiment will be described
with reference to the drawings.
[0018] The analog switches 42 and 43 are switched by the control signal input through the
loop filter control terminal 41, so that a loop band corresponding to the sensitivity
of the voltage controlled oscillator 1 is realized. When a terminal c1 is selected
by the analog switch 42 and a terminal c2 is selected by the analog switch 43, the
signal input to the loop filter input terminal 31 is limited by the loop band according
to the capacitor 50 and the resistor 48, and then output through the loop filter output
terminal 32. In contrast, when a terminal d1 is selected by the analog switch 42 and
a terminal d2 is selected by the analog switch 43, the signal input to the loop filter
input terminal 31 is limited by the loop band according to the capacitor 51 and the
resistor 49, and then output through the loop filter output terminal 32.
[0019] As seen from the above description, according to the second embodiment of the invention,
it is possible to realize a loop filter corresponding to the change of the input-output
sensitivity of the voltage controlled oscillator 1.
[0020] Next, a third embodiment of the invention will be described with reference to the
drawings.
[0021] Fig. 5 is a block diagram of a loop filter used in the frequency synthesizer of the
third embodiment of the invention. The devices, circuit elements, and the like identical
or equivalent to those shown in Figs. 1 and 3 are designated by the same reference
numerals, and duplicated description is omitted. In Fig. 5, 59 designates a switch,
54 designates a capacitor, and 55 and 56 designate resistors. In the embodiment, response
characteristics are switched by bypassing the resistor 56 by means of the switch 59.
[0022] The operation of the frequency synthesizer of the third embodiment will be described
with reference to the drawings.
[0023] The ON/OFF state of the switch 59 is controlled by the control signal input through
the loop filter control terminal 41, so that a loop filter response characteristics
corresponding to the sensitivity of the voltage controlled oscillator 1 are realized.
In the embodiment, when the switch 59 is ON, the signal input through the input terminal
31 is limited by the loop band according to the capacitor 54 and the resistor 55,
and then output through the output terminal 32. In contrast, when the switch 59 is
OFF, the signal input through the loop filter input terminal 31 is limited by the
loop band according to the capacitor 54 and the resistors 55 and 56, and then output
through the output terminal 32.
[0024] As seen from the above description, according to the third embodiment of the invention,
a loop filter corresponding to the change of the input-output sensitivity of the voltage
controlled oscillator 1 can be realized by a simple circuit configuration.
[0025] Next, a fourth embodiment of the invention will be described with reference to the
drawings.
[0026] Fig. 6 is a block diagram of a loop filter used in the frequency synthesizer of the
fourth embodiment of the invention. The devices, circuit elements, and the like identical
or equivalent to those shown in Figs. 1, 3, and 5 are designated by the same reference
numerals, and duplicated description is omitted. In Fig. 6, 52 designates a transistor,
53 designates a transistor control terminal, and 57 and 58 designate resistors. In
other words, the switch 59 of Fig. 5 is realized by using the transistor 52. The transistor
control terminal 53 corresponds to the loop filter control terminal 41.
[0027] The operation of the frequency synthesizer of the fourth embodiment will be described
with reference to the drawings.
[0028] The turn-ON/turn-OFF state of the transistor 52 is controlled by the control signal
input through the transistor control terminal 53, so that a loop filter response characteristics
corresponding to the sensitivity of the voltage controlled oscillator 1 are realized.
When the transistor 52 is turned ON, the signal input through the input terminal 31
is limited by the loop band according to the capacitor 54 and the resistor 55, and
then output through the output terminal 32. In contrast, when the transistor 52 is
turned OFF, the signal input through the loop filter input terminal 31 is limited
by the loop band according to the capacitor 54 and the resistors 55 and 56, and then
output through the loop filter output terminal 32.
[0029] As seen from the above description, according to the fourth embodiment of the invention,
a loop filter corresponding to the change of the input-output sensitivity of the voltage
controlled oscillator 1 can be realized by a simple circuit configuration.
[0030] According to the invention, the use of the voltage controlled oscillator 1 in which
output oscillation frequency ranges can be switched by an external control signal
allows the single voltage controlled oscillator 1 to output two or more frequency
ranges, and the response characteristics of the loop filter 4 can be changed in conformity
to the sensitivity which is a ratio of the output frequency to the input voltage of
the voltage controlled oscillator 1 in each output oscillation frequency range. Consequently,
the time required for changing the C/N ratio and the channel can be optimized.
[0031] In the embodiments described above, the voltage controlled oscillator and the loop
filter are configured so as to switch two frequency ranges. The invention is not restricted
to this, and may be applied to a configuration in which three or more frequency ranges
are switched.
[0032] In the embodiments, the slope in a higher frequency region of the sensitivity characteristics
of the voltage controlled oscillator is greater than that in a lower frequency region.
The invention may be applied to a configuration in which, contrary to the embodiments,
the slope in a higher frequency region is smaller than that in a lower frequency region.
[0033] In the embodiments, a resistor and a capacitor which are connected in series are
used as filter elements of the loop filter. The invention is not restricted to this,
and may be applied to a configuration in which a passive element(s) of another kind,
such as an inductor or an active element(s) such as a semiconductor device are used
as far as the element(s) can attain desired filter response characteristics. Alternatively,
the manner of connecting these elements is not restricted to a series connection.
[0034] In the fourth embodiment, a transistor is used as the switch. The invention is not
restricted to this. Alternatively, a semiconductor device of another kind may be used
as far as the device can exhibit a controllable switch function.
[0035] The circuit configuration of the loop filter is not restricted to that described
in the embodiments, as far as it can change the filter response characteristics so
as to conform to the sensitivity of the switched frequency range in accordance with
the switch control signal of the voltage controlled oscillator.
[0036] Next, a fifth embodiment of the invention will be described with reference to the
drawings.
[0037] Fig. 7 is a block diagram of a frequency synthesizer of a fifth embodiment of the
invention. In Fig. 7, 1 designates a voltage controlled oscillator, 13 designates
a high-frequency grounding capacitor, 2 designates a variable frequency divider, 3
designates a phase comparator, 5 designates a reference frequency input terminal,
4 designates a loop filter, 451 designates a first loop filter, 452 designates a second
loop filter, 60 designates an ON/OFF switch which is a semiconductor analog switch,
601 designates a loop open/close control signal input terminal, and 6 designates an
output terminal.
[0038] The operation of the thus configured frequency synthesizer of the fifth embodiment
will be described with reference to Fig. 7.
[0039] The output signal of the voltage controlled oscillator 1 is branched. One of the
branched signals is output through the output terminal 6, and the other branched signal
is input to the variable frequency divider 2. The frequency of the signal input to
the variable frequency divider 2 is divided, and the resulting signal is input to
the phase comparator 3 together with the reference frequency signal input to the reference
frequency input terminal 5. Thereafter, a signal corresponding to the phase difference
between the two input signals is input to the first loop filter 451 of the loop filter
4. The output signal of the first loop filter 451 is input to the analog switch 60,
and the output signal of the analog switch 60 is input to the second loop filter 452.
The output signal of the second loop filter 452 is input to the voltage controlled
oscillator 1 as the control signal voltage, thereby constituting a feedback loop.
In the embodiment, the high-frequency grounding capacitor 13 operates to prevent a
high frequency signal of the voltage controlled oscillator from being transmitted
toward the loop filter.
[0040] A loop open/close control signal is input to the loop open/close control signal input
terminal 601 so as to control the ON/OFF state of the ON/OFF switch 60, thereby controlling
the open/close state of the feedback loop.
[0041] Among capacitors existing between the analog switch 60 and the voltage controlled
oscillator 1, all the capacitors except the high-frequency grounding capacitor 13
are laminated film capacitors which show properties of a small change of the capacitance
in response to an applied voltage and a small hysteresis.
[0042] Namely, a capacitor constituting the second loop filter 452 is a laminated film capacitor.
[0043] As a result, all the capacitors existing between the analog switch 60 and the voltage
controlled oscillator 1, except the high-frequency grounding capacitor 13 exhibit
a small change of the capacitance with respect to the change of the voltage of the
control signal of the voltage controlled oscillator 1. Even when the open loop state
is set immediately after the switching of the frequency, therefore, the change of
the control signal voltage of the voltage controlled oscillator 1 can be made small
so that the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0044] As seen from the above description, according to the fifth embodiment of the invention,
even when the open loop state is set immediately after the switching of the frequency,
the change of the control signal voltage of the voltage controlled oscillator 1 is
small and hence the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0045] Next, a sixth embodiment of the invention will be described with reference to the
drawings.
[0046] Fig. 8 is a block diagram showing the configuration of a loop filter and an analog
switch used in the sixth embodiment of the invention.
[0047] The embodiment is basically configured in the same manner as the fifth embodiment.
Therefore, the devices, circuit elements, and the like identical or equivalent to
those shown in Fig. 7 are designated by the same reference numerals, and duplicated
description is omitted.
[0048] In Fig. 8, 453 and 455 designate capacitors, and 454 designates a resistor.
[0049] The operation of the thus configured frequency synthesizer of the sixth embodiment
will be described with reference to the figure.
[0050] The output signal of the phase comparator 3 is input to the first loop filter 451,
smoothed by the capacitor 453, and then input to the analog switch 60. The output
of the analog switch 60 is input to the second loop filter 452, smoothed by the resistor
454 and the capacitor 455, and then input to the voltage controlled oscillator 1 as
the control signal voltage.
[0051] Among the capacitors existing between the analog switch 60 and the voltage controlled
oscillator 1, all capacitors except the high-frequency grounding capacitor 13 are
laminated film capacitors. Even when the open loop state is set immediately after
the switching of the frequency, therefore, all the capacitors existing between the
analog switch 60 and the voltage controlled oscillator 1, except the high-frequency
grounding capacitor 13 exhibit a small change of the capacitance. Therefore, the change
of the control signal voltage of the voltage controlled oscillator 1 can be made small
so that the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0052] As seen from the above description, according to the sixth embodiment of the invention,
even when the open loop state is set immediately after the switching of the frequency,
the change of the control signal voltage of the voltage controlled oscillator 1 is
small and hence the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0053] According to the embodiment, moreover, when the analog switch 60 is opened, the voltage
across the analog switch 60 is held by the capacitors 453 and 455, and hence the switching
noise is low in level.
[0054] Alternatively, the first and second loop filters 451 and 452 may be replaced with
each other. In this alternative, the capacitor 453 is a laminated film capacitor.
[0055] Next, a seventh embodiment of the invention will be described with reference to the
drawings.
[0056] Fig. 9 is a diagram showing the configuration of a loop filter and an analog switch
used in the seventh embodiment of the invention.
[0057] In Fig. 9, the devices, circuit elements, and the like identical or equivalent to
those shown in Figs. 7 and 8 are designated by the same reference numerals, and duplicated
description is omitted.
[0058] In the embodiment shown in Fig. 9, 456 designates a resistor, and 457 designates
a capacitor.
[0059] The operation of the thus configured frequency synthesizer of the seventh embodiment
will be described with reference to Fig. 9.
[0060] The output signal of the phase comparator 3 is input to the first loop filter 451,
smoothed by the capacitor 453, and then input to the analog switch 60. The output
of the analog switch 60 is input to the second loop filter 452, and smoothed by the
resistors 454 and 456 and the capacitors 455 and 457. The smoothed signal is then
input to the voltage controlled oscillator 1 as the control signal voltage. The capacitors
455 and 457 are laminated film capacitors which show properties of a small change
of the capacitance in response to an applied voltage and a small hysteresis.
[0061] As a result, all the capacitors existing between the analog switch 60 and the voltage
controlled oscillator 1, except the high-frequency grounding capacitor 13 exhibit
a small change of the capacitance with respect to the change of the voltage of the
control signal of the voltage controlled oscillator 1. Even when the open loop state
is set immediately after the switching of the frequency, therefore, the change of
the control signal voltage of the voltage controlled oscillator 1 can be made small
so that the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0062] As seen from the above description, according to the seventh embodiment of the invention,
even when the open loop state is set immediately after the switching of the frequency,
the change of the capacitance of the capacitors constituting the loop filter is small.
Therefore, the change of the control signal voltage of the voltage controlled oscillator
can be made small so that the change of the frequency of the output signal of the
voltage controlled oscillator is small.
[0063] According to the embodiment, moreover, noise can further be reduced in level by the
low-pass filter consisting of the resistor 456 and the capacitor 457.
[0064] Next, an eighth embodiment of the invention will be described with reference to the
drawings.
[0065] Fig. 10 is a block diagram of a frequency synthesizer of the eighth embodiment of
the invention.
[0066] In Fig. 10, the devices, circuit elements, and the like identical or equivalent to
those shown in Fig. 7 are designated by the same reference numerals, and duplicated
description is omitted. In the embodiment, the analog switch 60 is disposed between
the phase comparator 3 and the loop filter 4.
[0067] The operation of the thus configured frequency synthesizer of the eighth embodiment
will be described with reference to Fig. 10.
[0068] The output signal of the phase comparator 3 is input to the analog switch 60. The
output of the analog switch 60 is input to the loop filter 4, and smoothed by the
resistors 454 and 456 and the capacitors 453, 455 and 457. The smoothed output is
then input to the voltage controlled oscillator 1 as the control signal voltage. The
high-frequency grounding capacitor 13 operates to prevent a high frequency signal
of the voltage controlled oscillator from being transmitted toward the loop filter
4.
[0069] The capacitors 453, 455 and 457 are laminated film capacitors which show properties
of a small change of the capacitance in response to an applied voltage and a small
hysteresis.
[0070] As a result, all the capacitors existing between the analog switch 60 and the voltage
controlled oscillator 1, except the high-frequency grounding capacitor 13 exhibit
a small change of the capacitance with respect to the change of the voltage of the
control signal of the voltage controlled oscillator 1. Even when the open loop state
is set immediately after the switching of the frequency, therefore, the change of
the control signal voltage of the voltage controlled oscillator 1 can be made small
so that the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0071] As seen from the above description, according to the eighth embodiment of the invention,
even when the open loop state is set immediately after the switching of the frequency,
the change of the capacitance of the capacitors constituting the loop filter 4 is
small. Therefore, the change of the control signal voltage of the voltage controlled
oscillator can be made small so that the change of the frequency of the output signal
of the voltage controlled oscillator is small.
[0072] Since all the capacitors exist between the analog switch 60 and the voltage controlled
oscillator 1, moreover, the total capacitance of the capacitors which hold the control
voltage during the open loop state is large and hence the operation is stabilized.
[0073] Next, a ninth embodiment of the invention will be described with reference to the
drawings.
[0074] Fig. 11 is a block diagram of a frequency synthesizer of the ninth embodiment of
the invention. The devices, circuit elements, and the like identical or equivalent
to those shown in Fig. 7 are designated by the same reference numerals, and duplicated
description is omitted. In Fig. 11, 331 designates a phase comparing circuit, 332
designates a charge pump, 333 designates a loop open/close control signal input terminal.
[0075] The operation of the thus configured frequency synthesizer of the ninth embodiment
will be described with reference to Fig. 11.
[0076] The output signal of the variable frequency divider 2 is input to the phase comparing
circuit 331 together with the reference frequency signal input to the reference frequency
input terminal 5. Thereafter, a signal corresponding to the phase difference between
the two frequency signals is input to the charge pump 332. The charge pump 332 operates
in the following manner. When the phase of the output of the variable frequency divider
leads, the output voltage is lowered during the period corresponding to the phase
difference, and, when the phase lags, the output voltage is raised. During the other
period, the output is set to be in the open state. The output of the charge pump 332
is input to the loop filter 4, and smoothed by the resistors 454 and 456 and the capacitors
453, 455 and 457. The smoothed output is then input to the voltage controlled oscillator
1 as the control signal voltage. The capacitors 453, 455 and 457 are laminated film
capacitors which show properties of a small change of the capacitance in response
to an applied voltage and a small hysteresis. The output of the charge pump 332 is
forcedly set to be in the open state by the loop open/close control signal input to
the loop open/close control signal input terminal 333, thereby attaining the open
loop state.
[0077] All the capacitors existing between the charge pump 332 and the voltage controlled
oscillator 1, except the high-frequency grounding capacitor 13 exhibit a small change
of the capacitance with respect to the change of the voltage of the control signal
of the voltage controlled oscillator 1. Even when the open loop state is set immediately
after the switching of the frequency, therefore, the change of the control signal
voltage of the voltage controlled oscillator 1 can be made small so that the change
of the frequency of the output signal of the voltage controlled oscillator 1 is small.
[0078] As seen from the above description, according to the ninth embodiment of the invention,
even when the open loop state is set immediately after the switching of the frequency,
the change of the capacitance of the capacitors constituting the loop filter is small.
Therefore, the change of the control signal voltage of the voltage controlled oscillator
can be made small so that the change of the frequency of the output signal of the
voltage controlled oscillator is small.
[0079] In the embodiment, moreover, the charge pump 332 serves also as the ON/OFF switch,
and hence the number of elements can be reduced.
[0080] Next, a tenth embodiment of the invention will be described with reference to the
drawings.
[0081] Fig. 12 shows a synchronizing circuit and a delay circuit which convert the loop
open/close control signal into the switch control signal in the tenth embodiment of
the invention, and Fig. 13 shows timings of signals. In Fig. 12, the devices, circuit
elements, and the like identical or equivalent to those shown in Fig. 7 are designated
by the same reference numerals, and duplicated description is omitted. In Fig. 12,
8 designates the synchronizing circuit consisting of a D type flip-flop, 9 designates
the delay circuit, 91 designates a resistor, 92 designates a capacitor, 110 designates
a loop open/close control signal input terminal, 111 designates a reference signal
input terminal, 112 designates a switch control signal output terminal, and 113 designates
an output terminal of the synchronizing circuit. In Fig. 13, 81 designates the waveform
of the reference signal, 82 designates the waveform of the output of the charge pump,
83 designates the waveform of the loop control signal, 84 designates the waveform
of the output signal of the synchronizing circuit, and 85 designates the waveform
of the output signal of the delay circuit.
[0082] The operation of the thus configured frequency synthesizer of the tenth embodiment
will be described with reference to Figs. 12 and 13.
[0083] First, the loop open/close control signal input through the loop open/close control
signal input terminal 110, and the reference signal input through the reference input
terminal 111 are input as a data input and a clock input to the synchronizing circuit
8 of the D type flip-flop, respectively. In this case, the loop open/close control
signal, and the reference signal are input to the synchronizing circuit 8 at the timings
indicated in 83 and 81, respectively. The signal of the synchronizing circuit 8 is
then output through the output terminal 113 of the synchronizing circuit at the timing
indicated in 84. Thereafter, the output is input to the delay circuit 9, and delayed
by a delay amount corresponding to the resistor 91 and the capacitor 92. The delayed
signal is output through the switch control signal output terminal 112 at the timing
indicated in 85.
[0084] Then the output of the delay circuit is input to the analog switch 60 as a switch
open/close control signal. The timing when the signal level reaches the threshold
of the control voltage of the analog switch 60 is set to a timing when the output
82 of the charge pump does not produce a signal. This setting can be performed by
suitably selecting the values of the resistor 91 and the capacitor 92 constituting
the delay circuit 9.
[0085] As seen from the above description, according to the tenth embodiment of the invention,
the timing of inputting the loop open/close control signal is set to a timing when
the output of the charge pump does not produce a signal. Even when the loop open/close
control signal is input at an arbitrary timing to set the open loop state, therefore,
the change of the control signal voltage of the voltage controlled oscillator 1 can
be made small so that the change of the frequency of the output signal of the voltage
controlled oscillator is small.
[0086] In the above, the configuration in which the synchronizing circuit and the delay
circuit are applied to the eighth embodiment has been described. It is a matter of
course that these circuits may be applied to the fifth, sixth, seventh, or ninth embodiment
with operating in the same manner.
[0087] Next, an eleventh embodiment of the invention will be described with reference to
the drawings.
[0088] Fig. 14 shows a synchronizing circuit and a delay circuit which convert the loop
open/close control signal into the switch control signal in the eleventh embodiment
of the invention, and Fig. 15 shows timings of signals. In Figs. 14 and 15, the devices,
circuit elements, and the like identical or equivalent to those shown in Figs. 7,
12 and 13 are designated by the same reference numerals, and duplicated description
is omitted.
[0089] In Fig. 14, 14 designates a waveform shaping circuit, and, in Fig. 15, 86 designates
the waveform of the switch control signal which is an output signal of the waveform
shaping circuit.
[0090] The operation of the thus configured frequency synthesizer of the eleventh embodiment
will be described with reference to Figs. 14 and 15.
[0091] The signal output from the delay circuit 9 is input to the waveform shaping circuit
14 which consists of a usual logic gate or comparator. Depending on whether the output
signal of the delay circuit 9 is higher than the threshold or not, the waveform shaping
circuit outputs the switch control signal of HIGH or LOW. The timing of outputting
the signal is indicated in 86.
[0092] The signal is then output through the switch control signal output terminal 112 as
the switch control signal, and then input to the switch control signal input terminal
601 of the analog switch 60.
[0093] As seen from the above description, according to the eleventh embodiment of the invention,
the timing of inputting the loop open/close control signal is set to a timing when
the output of the charge pump does not produce a signal. Even when the loop open/close
control signal is input at an arbitrary timing to set the open loop state, therefore,
the change of the control signal voltage of the voltage controlled oscillator can
be made small so that the change of the frequency of the output signal of the voltage
controlled oscillator is small.
[0094] In the above, the configuration in which the timing control circuit is applied to
the eighth embodiment has been described. It is a matter of course that the circuit
may be applied to the fifth, sixth, seventh, or ninth embodiment with operating in
the same manner.
[0095] The rising edge of the loop open/close control signal becomes steeper, and hence
the uncertainty level of the switching is lowered so that the noise level is reduced.
[0096] Next, a twelfth embodiment of the invention will be described with reference to the
drawings.
[0097] Fig. 16 is a block diagram of a frequency synthesizer of the twelfth embodiment of
the invention, and Fig. 17 is a diagram showing the configuration of a voltage controlled
oscillator.
[0098] In Figs. 16 and 17, the devices, circuit elements, and the like identical or equivalent
to those shown in Fig. 7 are designated by the same reference numerals, and duplicated
description is omitted. In the embodiment shown in Fig. 16, 15 designates a modulation
signal input terminal, and, in Fig. 17, 16 designates a control signal voltage input
terminal, 17 designates a first variable capacitance diode, 19 designates a second
variable capacitance diode, 18 and 21 designate capacitors, 22 designates a resonator,
and 23 designates an oscillation circuit.
[0099] The operation of the thus configured frequency synthesizer of the twelfth embodiment
will be described with reference to Figs. 16 and 17.
[0100] The output of the second loop filter 452 is input to the control signal voltage input
terminal 16 of the voltage controlled oscillator 1. The capacitance of the first variable
capacitance diode 17 one terminal of which is grounded is determined by the control
signal. The oscillation frequency of the oscillation circuit 23 is determined by the
first variable capacitance diode 17 and the resonator 22 which are coupled to each
other with respect to a high frequency, and the determined frequency is used as the
output frequency of the voltage controlled oscillator 1.
[0101] The capacitance of the second variable capacitance diode 19 one terminal of which
is grounded can be changed by the modulation signal input through the modulation signal
input terminal 15. As a result, the oscillation frequency of the oscillation circuit
23 is determined by the first variable capacitance diode 17, the second variable capacitance
diode 19, and the resonator 22 which are coupled to each other with respect to a high
frequency. Furthermore, the output of the voltage controlled oscillator 1 may undergo
also the frequency modulation.
[0102] Among capacitors existing between the analog switch 60 and the voltage controlled
oscillator 1, all the capacitors except the high-frequency grounding capacitor 13
are laminated film capacitors which show properties of a small change of the capacitance
in response to an applied voltage and a small hysteresis.
[0103] As a result, all the capacitors existing between the analog switch 60 and the voltage
controlled oscillator 1, except the high-frequency grounding capacitor 13 exhibit
a small change of the capacitance with respect to the change of the voltage of the
control signal of the voltage controlled oscillator 1. Even when the open loop state
is set immediately after the switching of the frequency, therefore, the change of
the control signal voltage of the voltage controlled oscillator 1 can be made small
so that the change of the frequency of the output signal of the voltage controlled
oscillator 1 is small.
[0104] As seen from the above description, according to the twelfth embodiment of the invention,
even when the open loop state is set immediately after the switching of the frequency,
the change of the capacitance of the capacitors constituting the loop filter 4 is
small. Therefore, the change of the control signal voltage of the voltage controlled
oscillator can be made small so that the change of the frequency of the output signal
of the voltage controlled oscillator is small.
[0105] Since the voltage controlled oscillator 1 is provided with the modulation signal
input terminal 15, furthermore, the output signal of the voltage controlled oscillator
may undergo also the modulation.
[0106] In the above, the configuration in which the modulation signal input terminal 15
is added to the voltage controlled oscillator 1 of the fifth embodiment has been described.
Alternatively, the modulation signal input terminal 15 may be added to the voltage
controlled oscillator 1 of the sixth, seventh, eighth, or ninth embodiment.
[0107] Next, a thirteenth embodiment of the invention will be described with reference to
the drawings.
[0108] Fig. 18 is a diagram showing the configuration of a voltage controlled oscillator
1 used in the thirteenth embodiment of the invention.
[0109] In Fig. 18, the devices, circuit elements, and the like identical or equivalent to
those shown in Figs. 1 and 17 are designated by the same reference numerals, and duplicated
description is omitted. In the embodiment of Fig. 18, 202 and 206 designate coils,
203 and 204 designate capacitors, and 205 and 207 designate diodes.
[0110] The operation of the thus configured frequency synthesizer of the thirteenth embodiment
will be described with reference to Fig. 18.
[0111] The conductive/nonconductive state of the first diode 205 one terminal of which is
grounded through the capacitor 204 can be changed by the control signal input through
the second control signal input terminal 12. This allows the electrostatic capacitance
of the resonator 22 of the voltage controlled oscillator 1 to be changed, so that
two oscillation frequency ranges are switched. According to the circuit system, when
the sign of the control signal input through the second control signal input terminal
12 is minus, the higher frequency range of the two oscillation frequency ranges is
output, and, when the sign of the input signal is plus, the lower frequency range
is output. The terminal of the first diode which is not grounded is connected to the
second diode 207 through the coil 206. When the sign of the control signal input through
the control signal input terminal 12 is changed from plus to minus, the second diode
207 causes the switching of the first diode 205 to rapidly rise.
[0112] Even when the feedback loop of the synthesizer is set to be in the open state immediately
after the lower frequency range of the two oscillation frequency ranges is switched
to the higher frequency range, therefore, the time required for switching the first
diode 205 is short. This allows the change of the capacitance of the diode after the
open loop state, even in the case where the period from the switching of the frequency
range to the open loop state is short. Consequently, the change of the control signal
of the voltage controlled oscillator after the open loop state can be made small so
that the change of the frequency of the output signal of the voltage controlled oscillator
is small. In the embodiment, the coils 202 and 206 are disposed in order to cut off
the control signals with respect to a high frequency.
1. A frequency synthesizer comprising:
a voltage controlled oscillator which has a plurality of oscillation frequency ranges
that can be switched in accordance with a switch control signal for switching the
oscillation frequency ranges, and in which an oscillation frequency is changeable
for each of the plurality of oscillation frequency ranges in accordance with a control
signal voltage of an input control signal;
a variable frequency divider which variably divides a frequency of an output signal
of said voltage controlled oscillator;
a phase comparator which compares a phase of a frequency-divided signal in which a
frequency is divided, with a phase of a reference signal which serves as a reference
of the oscillation frequency; and
a loop filter which converts a signal obtained as a result of the comparison into
the control signal voltage of said voltage controlled oscillator,
filter response characteristics of said loop filter being changed so as to conform
to a sensitivity of the switched frequency range of said voltage controlled oscillator
in accordance with the switch control signal supplied to said voltage controlled oscillator.
2. A frequency synthesizer according to claim 1, wherein
said loop filter comprises:
a plurality of filter elements which have different characteristics, and in each of
which a resistor and a capacitor are connected in series; and
a switch which switches said filter elements in accordance with the switch control
signal supplied to said voltage controlled oscillator.
3. A frequency synthesizer according to claim 1, wherein
said loop filter comprises:
a filter element in which a plurality of resistors and capacitors are connected in
series, and a switch which bypasses a part of said plurality of resistors in accordance
with the switch control signal supplied to said voltage controlled oscillator.
4. A frequency synthesizer according to claim 2 or 3, wherein
said switch is a semiconductor device switch.
5. A frequency synthesizer comprising:
a voltage controlled oscillator in which an output oscillation frequency can continuously
be changed in accordance with a value of a control signal voltage;
a variable frequency divider which divides a frequency of an output signal of said
voltage controlled oscillator;
a phase comparator which compares a phase of an output signal of said variable frequency
divider with a phase of a reference signal, and which outputs the control signal voltage;
a loop filter which limits a frequency band of an output signal of said phase comparator;
and
an ON/OFF switch which is disposed at a position closer to said phase comparator than
at least a part of said loop filter, and which closes and opens a loop state consisting
of said voltage controlled oscillator, said variable frequency divider, said phase
comparator, and said loop filter,
among capacitors used in said loop filter, a capacitor which is disposed between said
ON/OFF switch and said voltage controlled oscillator having properties in which a
capacitance change in response to an applied voltage is smaller than a predetermined
value and hysteresis is smaller than a predetermined value.
6. A frequency synthesizer according to claim 5, wherein
said capacitor having properties in which a capacitance change in response to an applied
voltage is smaller than the predetermined value and hysteresis is smaller than the
predetermined value is a laminated film capacitor.
7. A frequency synthesizer according to claim 5 or 6, wherein
said loop filter comprises of two portions of a first loop filter and a second loop
filter, and
said ON/OFF switch is connected in series between said first loop filter and said
second loop filter, and turned ON and OFF in response to a loop open/close control
signal, thereby switching a close loop state and an open loop state.
8. A frequency synthesizer according to claim 5 or 6, wherein
said ON/OFF switch is disposed between said phase comparator and said loop filter,
and turned ON and OFF in response to a loop open/close control signal, thereby switching
a close loop state and an open loop state.
9. A frequency synthesizer according to claim 5 or 6, wherein
said phase comparator comprises:
a phase comparing circuit which compares the phase of the output signal of said variable
frequency divider with the phase of the reference signal; and
a charge pump which outputs the control signal voltage on the basis of a result of
the comparison, and a function of said ON/OFF switch is conducted by holding an output
of said charge pump to a high impedance state while the loop open/close control signal
designates the open loop state.
10. A frequency synthesizer according to any of claim 5, 6, 7, 8, or 9, wherein
said voltage controlled oscillator comprises a modulation signal input terminal, and
receives a modulation signal through said modulation signal input terminal at an open
loop state, thereby outputting a signal which undergoes a frequency modulation in
an open long state.
11. A frequency synthesizer comprising:
a voltage controlled oscillator in which an output oscillation frequency can continuously
be changed in accordance with a value of a control signal voltage;
a variable frequency divider which divides a frequency of an output signal of said
voltage controlled oscillator;
a phase comparator which compares a phase of an output signal of said variable frequency
divider with a phase of a reference signal, and which outputs the control signal voltage;
a loop filter which limits a frequency band of an output signal of said phase comparator;
an ON/OFF switch which closes and opens a loop state consisting of said voltage controlled
oscillator, said variable frequency divider, said phase comparator, and said loop
filter;
a synchronizing circuit which outputs a loop open/close control signal for opening
and closing the loop state, in synchronization with the reference signal; and
a delay circuit which delays an output of said synchronizing circuit, thereby outputting
a switch control signal to said ON/OFF switch,
said delay circuit outputting the switch control signal during when the output of
the phase comparator in the close loop state is in a high impedance state.
12. A frequency synthesizer according to claim 11, wherein
said delay circuit comprises a time constant circuit which consists of a resistor
connected in series and a capacitor connected in parallel, and a waveform shaping
circuit which outputs a switch control signal of HIGH or LOW in response to an output
voltage of said time constant circuit.
13. A frequency synthesizer according to any of claim 5, 6, 7, 8, or 9, wherein
said voltage controlled oscillator has a plurality of oscillation frequency ranges
that can be switched in accordance with a switch control signal for switching the
oscillation frequency ranges, and the plurality of oscillation frequency ranges are
switched by switching a capacitance of a capacitor in a voltage controlled oscillator
resonating circuit.
14. A frequency synthesizer according to claim 13, wherein
said voltage controlled oscillator conducts the switching of the capacitance of the
capacitor in said resonating circuit, by using a semiconductor switch.
15. A frequency synthesizer according to claim 14, wherein
said voltage controlled oscillator uses a diode switch as the semiconductor switch
which switches the capacitance of the capacitor in said resonating circuit.
16. A frequency synthesizer according to claim 15, wherein
said voltage controlled oscillator uses a diode switch as the semiconductor switch
which switches the capacitance of the capacitor in said resonating circuit, and, in
parallel to the first diode switch which switches the capacitance, a second diode
one terminal of which is grounded is reversely connected, thereby allowing a change
of the oscillation frequency to be small even when a feedback loop is opened immediately
after the output oscillation frequency ranges of said voltage controlled oscillator
are switched.